Strain tuned magnetotransport of Jeff=1/2 antiferromagnetic Sr2IrO4 thin films
arXiv:2309.08981 · doi:10.1016/j.mtphys.2022.100809
Abstract
In this work, we report observation of strain effect on physical properties of Sr2IrO4 thin films grown on SrTiO3 (001) and LaAlO3 (001) substrates. It is found that the film on LaAlO3 with compressive strain has a lower antiferromagnetic transition temperature (TN~210 K) than the film on SrTiO3 (TN~230 K) with tensile strain, which is probably caused by modified interlayer coupling. Interestingly, magnetoresistance due to pseudospin-flip of the film on LaAlO3 is much larger than that of tensile-strained film on SrTiO3, and robust anisotropic magnetoresistance is observed in the former, but H-driven reversal behavior is seen in the latter. By performing first principles calculations, it is revealed that epitaxial strain plays an efficient role in tuning the canting angle of Jeff=1/2 moments and thus net moment at every IrO2 layer, responsible for the difference in magnetoresistance between the films. The reversal of anisotropic magnetoresistance in the thin film on SrTiO3 can be ascribed to stabilization of a metastable stable with smaller bandgap as the Jeff=1/2 moments are aligned along the diagonal of basal plane by H. However, theoretical calculations reveal much higher magnetocrystalline anisotropy energy in the film on LaAlO3. This causes difficulties to drive the Jeff=1/2 moments to reach the diagonal and thereby the metastable state, explaining the distinct anisotropic magnetoresistance between two samples in a qualitative sense. Our findings indicate that strain can be a highly efficient mean to engineer the functionalities of Jeff=1/2 antiferromagnet Sr2IrO4.
21 pages and 5 figures
References in corpus (8)
- Mott Insulators in the Strong Spin-Orbit Coupling Limit: From Heisenberg to a Quantum Compass and Kitaev Models
- Neutron scattering study of correlated phase behavior in Sr2IrO4
- Square Lattice Iridates
- Ab-initio GMR and current-induced torques in Au/Cr multilayers
- Giant anisotropic magnetoresistance and nonvolatile memory in canted antiferromagnet Sr2IrO4
- Strain-engineering of the charge and spin-orbital interactions in Sr2IrO4
- Model analysis of magnetic susceptibility of SrIrO - 2D = 1/2 Heisenberg system with competing interlayer couplings
- Strong tuning of magnetism and electronic structure by spin orientation